Related Experiment Video
Updated: Sep 12, 2025

Simultaneous Measurement of HDAC1 and HDAC6 Activity in HeLa Cells Using UHPLC-MS
Published on: August 10, 2017
Discovery of chromatin-based determinants of azacytidine and decitabine anti-cancer activity
Rishi V Puram1,2, Qiangzong Yin1,3, YuhJong Liu1
1Broad Institute of Harvard and MIT, Cambridge, MA, USA.
Abstract:
The DNA-incorporating nucleoside analogs azacytidine (AZA) and decitabine (DEC) have clinical efficacy in blood cancers, yet the precise mechanism by which these agents kill cancer cells has remained unresolved - specifically, whether their anti-tumor activity arises from conventional DNA damage or DNA hypomethylation via DNA methyltransferase 1 (DNMT1) inhibition. This incomplete mechanistic understanding has limited their broader therapeutic application, particularly in solid tumors, where early clinical trials showed limited efficacy. Here, through the assessment of drug sensitivity in over 600 human cancer models and comparison to a non-DNA-damaging DNMT1 inhibitor (GSK-3685032), we establish DNA hypomethylation, rather than DNA damage, as the primary killing mechanism of AZA and DEC across diverse cancer types. In further support of an epigenetic killing mechanism, CRISPR drug modifier screens identified a core set of chromatin regulators, most notably the histone deubiquitinase USP48, as AZA and DEC protective factors. We show that USP48 is recruited to newly hypomethylated CpG islands and deubiquitinates non-canonical histones, establishing USP48 as a key molecular link between the two components of epigenetic gene regulation: DNA methylation and chromatin modification. Furthermore, loss of USP48, which occurs naturally through biallelic deletions in human cancers, sensitized both hematologic and solid tumors to DNMT1 inhibition in vitro and in vivo. Our findings elucidate the epigenetic mechanism of action of AZA and DEC and identify a homeostatic link between DNA methylation and chromatin state, revealing new therapeutic opportunities for DNMT1 inhibitors in solid tumors.
Insights
Azacytidine (AZA) and decitabine (DEC) kill cancer cells primarily through DNA hypomethylation, not DNA damage. Loss of USP48 sensitizes tumors to these epigenetic drugs, revealing new therapeutic avenues.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Oncology
Background:
- Azacytidine (AZA) and decitabine (DEC) are DNA-incorporating nucleoside analogs with clinical efficacy in blood cancers.
- Their precise cancer cell killing mechanism, whether DNA damage or DNA hypomethylation via DNA methyltransferase 1 (DNMT1) inhibition, remains unclear.
- This ambiguity has limited their application, especially in solid tumors.
Purpose of the Study:
- To elucidate the primary mechanism of action for AZA and DEC in cancer cell killing.
- To identify factors influencing sensitivity to DNMT1 inhibitors.
- To explore new therapeutic opportunities for DNMT1 inhibitors in solid tumors.
Main Methods:
- Drug sensitivity assessment in over 600 human cancer models.
- Comparison with a non-DNA-damaging DNMT1 inhibitor (GSK-3685032).
- CRISPR drug modifier screens to identify protective factors, focusing on chromatin regulators like USP48.
Main Results:
- DNA hypomethylation, not DNA damage, is the primary killing mechanism of AZA and DEC across diverse cancer types.
- The histone deubiquitinase USP48 acts as a protective factor against AZA and DEC by deubiquitinating non-canonical histones at hypomethylated CpG islands.
- Loss of USP48, through natural biallelic deletions in cancers, sensitizes both hematologic and solid tumors to DNMT1 inhibition.
Conclusions:
- AZA and DEC exert anti-tumor effects mainly through epigenetic modification (DNA hypomethylation).
- USP48 links DNA methylation and chromatin modification, acting as a key regulator of sensitivity to DNMT1 inhibitors.
- Targeting USP48 or exploiting its loss presents a promising strategy for enhancing DNMT1 inhibitor efficacy in solid tumors.
Related Concept Videos
Spreading of Chromatin Modifications
Writers
The writer...
Combination Therapies and Personalized Medicine
The combination of the drug acetazolamide and sulforaphane is a good example of combination therapy to treat cancer. The cells in the interior of a large tumor often die due to the hypoxic and...
Inhibition of Cdk Activity
Histone Variants at the Centromere
Drugs that Destabilize Microtubules

